首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 78 毫秒
1.
Wang GQ  Fu CL  Li JX  Du YZ  Tong J 《生理学报》2006,58(4):359-364
本研究旨在观察和比较视交叉上核(suprachiasmatic nucleus,SCN)与松果体(pineal gland,pG)中Clock基因内源性昼夜转录变化规律以及光照对其的影响。Sprague-Dawley大鼠在持续黑暗(constant darkness,DD)和12h光照:12h黑暗交替(12hourlight:12hour-darkcycle,LD)光制下分别被饲养8周(n=36)和4周n=36)后,在一昼夜内每隔4h采集一组SCN和PG组织(n=6),提取总RNA,用竞争性定量RT-PCR测定不同昼夜时点(circadian times.CT or zeitgeber times.ZT)各样品中Clock基因的mRNA相对表达量,通过余弦法和ClockLab软件获取节律参数,并经振幅检验是否存在昼夜节律性转录变化。结果如下:(1)SCN中Clock基因mRNA的转录在DD光制下呈现昼低夜高节律性振荡变化(P〈0.05),PG中Clock基因的转录也显示相似的内源性节律外观,即峰值出现于主观夜晚(SCN为CTl5,PG为CT18),谷值位于主观白天(SCN为CT3,PG为CT6)(P〉0.05)。(2)LD光制下SCN中Clock基因的转录也具有昼夜节律性振荡(P〈0.05),但与其DD光制下节律外观相比,呈现反时相节律变化(P〈0.05),且其表达的振幅及峰值的mRNA水平均增加(P〈0.05),而PG中Clock基因在LD光制下转录的相应节律参数变化却恰恰相反(P〈0.05)。(3)在LD光制下,光照使PG中Clock基因转录的节律外观反时相于SCN(P〈0.05),即在SCN和PG的峰值分别出现于光照期ZT10和黑暗期ZT17,谷值分别位于黑暗期ZT22和光照期ZT5。结果表明,Clock基因的昼夜转录在SCN和PG中存在同步的内源性节律本质,而光导引在这两个中枢核团调节Clock基因昼夜节律性转录方面有着不同的作用。  相似文献   

2.
小鼠血液和脑组织中胆碱酯酶的昼夜节律童建(苏州医学院预防医学系苏州215007)研究生理功能的节律现象及其发生机理的科学称之为时间生理学。通过多年来的工作,在生命活动的各个层次上都发现了周期各异的生理节律,其中研究最多的是昼夜节律。对于昼夜节律的测定...  相似文献   

3.
昼夜节律是指在生物体内存在的以近似24h为周期的生物节律.昼夜节律的重要性质之一是内源节律的周期性,哺乳动物的生理和代谢节律受昼夜节律的控制.昼夜节律的振荡导致下游分子通路和生理过程发生节律性变化,对营养物质的消化、吸收和代谢有一定的调控作用.本文主要综述了消化道蛋白质、糖、脂类等营养物质吸收代谢的节律性及其调控机制,...  相似文献   

4.
生物体的睡眠/觉醒、进食等行为以及各种生理、生化、代谢过程都遵循着大约24 h的周期性变化,称为昼夜节律(circadian rhythms)。昼夜节律与能量代谢之间存在着紧密的联系。位于下丘脑视交叉上核(suprachiasmatic nuclei,SCN)的中枢生物钟与外周组织细胞中的生物钟共同组成了哺乳动物的昼夜节律系统。以CLOCK/BMAL1异二聚体为核心的转录/翻译负反馈环保障了节律系统的正常运行。各种蛋白质翻译后修饰参与了昼夜节律的调控。综述了氧连β-N-乙酰葡糖胺修饰(O-Glc NAcylation)在调节昼夜节律中发挥的重要作用。O-Glc NAc修饰可以增强一些生物钟蛋白的稳定性及转录活性,也可以影响其他一些生物钟蛋白的磷酸化及细胞定位。抑制生物钟蛋白的O-Glc NAc修饰导致细胞节律衰弱和多种节律基因表达下调。研究表明,O-Glc NAc作为机体能量代谢的感受器参与了多条细胞代谢相关信号转导通路的调节,O-Glc NAc修饰为能量代谢影响昼夜节律提供了一条新的途径。  相似文献   

5.
目的:探讨慢性不可预见性应激状态下大鼠外周神经内分泌因子昼夜节律的表达特点。方法:成年雄性SD大鼠60只,随机分为模型组和对照组(n=30),采用束缚、摇晃、鼠笼倾斜、湿垫料、冷刺激、拥挤(整夜)、断食或断水、夹尾、昼/夜颠倒等慢性不可预知性温和刺激结合孤养方式,每天暴露于2种应激原中饲养21 d,建立抑郁症模型。测定应激前后大鼠糖水偏爱、旷场行为及高架十字迷宫行为学变化。连续24 h分6个时间点(ZT1、ZT5、ZT9、ZT13、ZT17、ZT21)处死动物取血,每个时间点处死5只大鼠。放免法测定6个时间点血清促肾上腺皮质激素(ACTH)含量,ELISA法测定6个相同时间点血浆皮质酮(CORT)、褪黑素(MT)、血管活性肠肽(VIP)含量,采用单一余弦法比较2组大鼠上述各指标的节律周期、振幅、峰值相位、中值的变化特点。结果:与对照组相比,模型大鼠体重增加值明显降低(P<0.01),各项行为学评分均显著减少(P<0.01)。慢性应激至抑郁样行为充分表达后,血浆ACTH、CORT的相位完全相反,时相大幅度提前,含量波动幅度减小,昼夜分泌节律紊乱;MT的24 h分泌节律完全丧失且整体水平下降,表达量显著降低;VIP虽仍存在24 h节律,但振幅明显降低,峰相位也延迟6 h,且表达量显著提高。结论:慢性应激抑郁状态可导致大鼠外周神经内分泌激素的近日节律非同步于SCN,表现为昼夜节律性和激素分泌量的异常。  相似文献   

6.
众所周知,从单细胞生物到人,几乎所有生物体在生理和行为上都表现出昼夜节律。内源性生物钟是产生昼夜节律的物质基础,由母钟和子钟组成,母钟位于下丘脑视交叉上核(SCN),子钟位于各个外周组织(肝脏、心脏等)。随着机体的逐渐衰老,反应生物钟输出信号的生理昼夜节律在振荡幅度、振荡周期和表达时相等方面发生了相应的变化。另一方面,生物钟控制的生理昼夜节律影响衰老的进程,生物钟功能紊乱会严重加速机体的衰老。本文概述了衰老与生物钟之间的相关研究进展,为进一步认识衰老机制及其对机体的影响提供了线索。  相似文献   

7.
昼夜节律生物钟是以24h为周期的自主维持的振荡器。在高等的多细胞生物中,生物钟可以分为母钟和子钟。研究表明哺乳动物的母钟位于下丘脑视交叉上核(suprachiasmatic nucleus,SCN),由此发出信息控制全身的节律活动;子钟位于组织细胞内,调控效应器的节律。在分子水平上,生物钟的振荡由自身调控反馈环路的转录和翻译组成,并接受外界环境因素的影响,通过下丘脑视叉上核(Suprachiasmatic Nucleus,SCN)中枢震荡器的同步整和而产生作用。视网膜是一种十分节律性的组织,许多生化的、细胞的和生理的过程都是以节律的方式来进行的,如视觉灵敏度、视网膜杆细胞外片层脱落和视网膜色素上皮细胞的吞噬作用、光受体中的视觉色素基因的快速表达等。生物钟存在于很多脊椎动物的视网膜中,被认为是一种外周生物钟。本文综述了视网膜生物钟,生物钟信号传输以及生物钟网络等的最新研究进展。  相似文献   

8.
王丹凤  杨广  陈文锋 《昆虫学报》2019,62(6):769-778
非编码RNA(ncRNA)是生物体细胞内一类重要的调控分子,其介导的昼夜节律调控日益受到研究者的重视。本文主要以黑腹果蝇Drosophila melanogaster和哺乳动物的相关研究为背景,阐述了微小RNA(miRNA)和长链非编码RNA(lncRNA)对昼夜节律的调控。miRNA介导的昼夜节律调控包括:生物体内(尤其是钟神经元中)具有节律性表达的miRNA;输入系统和miRNA存在相互调控,这主要是通过光照这个授时因子起作用;miRNA可直接调控核心振荡器,还可以调控其他基因而间接影响到核心振荡器;miRNA对输出系统的调控主要集中在代谢取食节律、运动节律、睡眠节律等。昼夜节律可调控lncRNA的表达,同时lncRNA也可调控昼夜节律,且lncRNA对基因调控范围广,作用机制复杂,这些都具有广阔的研究前景。本文将有助于进一步深入研究ncRNA对昼夜节律的调控。  相似文献   

9.
褪黑激素对脑机能的影响   总被引:8,自引:0,他引:8  
褪黑激素(melatonin,MEL)是松果腺分泌的吲哚胺中生物活性最高的一种化合物。脑是 MEL 的主要作用部位。在生理状态下,该激素对中枢神经系统的活动有调制作用,是维持脑内稳态的重要因素之一。药理剂量的 MEL 具有镇静、镇痛、催眠、抗癫痫效应以及影响学习与记忆过程。该激素的不同效应与给药剂量有关,并呈昼夜节律。  相似文献   

10.
时间生物学研究的新突破:小鼠昼夜节律生物钟基因的定位据美国Joseph.S.Takahashi等在“Science”上报道,他们用N-乙基-N-亚硝基脉(ENU)处理的小鼠后代筛选昼夜节律生物钟基因突变,鉴定出控制昼夜节律周期及维持节律性生物钟的半显...  相似文献   

11.
Zhou XJ  Jiang XH  Yu GD  Yin QZ 《生理学报》2000,52(3):215-219
先用持续光照和松果腺切除预处理大鼠,然后制成下丘脑薄片,记录其视交叉上核(SCN)神经元自发放电,观察其昼夜变化和褪黑素(MEL)对它的影响。实验结果表明:⑴在正常光照(光照:黑暗=12:12)条件下,SCN神经元自发放电频率呈现昼夜低的节律性。在昼夜时间(CT)6-8出现放电高峰,频率约为8.3Hz;在CT18-20出现低谷,频率约为3.8Hz。松果腺切除后,SCN神经元自发放电的昼夜节律性基本  相似文献   

12.
Melatonin (MEL) is a conserved molecule with respect to its synthesis pathway and functions. In crayfish, MEL content in eyestalks (Ey) increases at night under the photoperiod, and this indoleamine synchronizes the circadian rhythm of electroretinogram amplitude, which is expressed by retinas and controlled by the cerebroid ganglion (CG). The aim of this study was to determine whether MEL content in eyestalks and CG or circulating MEL in hemolymph (He) follows a circadian rhythm under a free-running condition; in addition, it was tested whether MEL might directly influence the spontaneous electrical activity of the CG. Crayfish were maintained under constant darkness and temperature, a condition suitable for studying the intrinsic properties of circadian systems. MEL was quantified in samples obtained from He, Ey, and CG by means of an enzyme-linked immunosorbent assay, and the effect of exogenous MEL on CG spontaneous activity was evaluated by electrophysiological recording. Variation of MEL content in He, Ey, and CG followed a circadian rhythm that peaked at the same circadian time (CT). In addition, a single dose of MEL injected into the crayfish at different CTs reduced the level of spontaneous electrical activity in the CG. Results suggest that the circadian increase in MEL content directly affects the CG, reducing its spontaneous electrical activity, and that MEL might act as a periodical signal to reinforce the organization of the circadian system in crayfish.  相似文献   

13.
The circadian rhythmicity of hormone secretion, body temperature, and sleep/wakefulness results from an endogenous rhythm of neural activity generated by clock genes in the suprachiasmatic nucleus (SCN). One of these genes, Clock, has been considered essential for the generation of cellular rhythmicity centrally and in the periphery; however, melatonin-proficient Clock(Delta19) + MEL mutant mice retain melatonin rhythmicity, suggesting that their central rhythmicity is intact. Here we show that melatonin production in these mutants was rhythmic in constant darkness and could be entrained by brief single daily light pulses. Under normal light-dark conditions, per2 and prokineticin2 (PK2) mRNA expression was rhythmic in the SCN of Clock(Delta19) + MEL mice. Expression of Bmal1 and npas2 was not altered, whereas per1 expression was arrhythmic. In contrast to the SCN, per1 and per2 expression, as well as Bmal1 expression in liver and skeletal muscle, together with plasma corticosterone, was arrhythmic in Clock(Delta19) + MEL mutant mice in normal light-dark conditions. npas2 mRNA was also arrhythmic in liver but rhythmic in muscle. The Clock(Delta19) mutation does not abolish central rhythmicity and light entrainment, suggesting that a functional Clock homolog, possibly npas2, exists in the SCN. Nevertheless, the SCN of Clock(Delta19) + MEL mutant mice cannot maintain liver and muscle rhythmicity through rhythmic outputs, including melatonin secretion, in the absence of functional Clock expression in the tissues. Therefore, liver and muscle, but not SCN, have an absolute requirement for CLOCK, with as yet unknown Clock-independent factors able to generate the latter.  相似文献   

14.
In mammals, the principal circadian pacemaker driving daily physiology and behavioral rhythms is located in the suprachiasmatic nucleus (SCN) in the anterior hypothalamus. The neural output of SCN is essential for the circadian regulation of behavioral activity. Although remarkable progress has been made in revealing the molecular basis of circadian rhythm generation within the SCN, the output pathways by which the SCN exert control over circadian rhythms are not well understood. Most SCN efferents target the subparaventricular zone (SPZ), which resides just dorsal to the SCN. This output pathway has been proposed as a major component involved in the outflow for circadian regulation. We have examined the downstream pathway of the central clock by means of multiunit neural activity (MUA) in freely moving mice. SCN neural activity is tightly coupled to environmental photic input and anticorrelated with MUA rhythm in the SPZ. In Clock mutant mice exhibiting attenuated circadian locomotor rhythmicity, MUA rhythmicity in the SCN and SPZ is similarly blunted. These results suggest that the SPZ plays a functional role in relaying circadian and photic signals to centers involved in generating behavioral activity.  相似文献   

15.
During an investigation into the role of the neural cell adhesion molecules such as L1 and NCAM in the generation mechanism of circadian rhythms, we observed that L1-like immunoreactive substance is expressed in the hypothalamic suprachiasmatic nucleus (SCN). Therefore, we examined the effect of continuous infusion of anti-L1 antibody into the third cerebral ventricle above the SCN using an Alzet osmotic minipump, on the circadian rhythm of locomotor activity in rats under constant red dim light (less than 1 lx) condition, in order to elucidate the role of L1 in the mechanism of circadian rhythm. Continuous infusion of intact rabbit IgG into the third cerebral ventricle above the SCN, which was done as a control experiment, shifted the phase of the free-running circadian rhythm and reduced daily locomotor activity for an initial few days, however, it did not eliminate the circadian rhythm. In contrast, continuous infusion of anti-L1 antibody temporarily disrupted the circadian rhythm during the infusion period. Furthermore, the infusion of the anti-L1 antibody but not that of control IgG caused a change in the SCN conformation, from which it appeared that SCN neurons displaced in dorsal direction, 4 days after the start of the infusion. These findings suggest that the cell adhesion molecule, L1, might be involved in the generation and/or transduction of the time signal of the circadian rhythm in the SCN.  相似文献   

16.
During an investigation into the role of the neural cell adhesion molecules such as L1 and NCAM in the generation mechanism of circadian rhythms, we observed that L1-like immunoreactive substance is expressed in the hypothalamic suprachiasmatic nucleus (SCN). Therefore, we examined the effect of continuous infusion of anti-L1 antibody into the third cerebral ventricle above the SCN using an Alzet osmotic minipump, on the circadian rhythm of locomotor activity in rats under constant red dim light (less than 1 lx) condition, in order to elucidate the role of L1 in the mechanism of circadian rhythm. Continuous infusion of intact rabbit IgG into the third cerebral ventricle above the SCN, which was done as a control experiment, shifted the phase of the free-running circadian rhythm and reduced daily locomotor activity for an initial few days, however, it did not eliminate the circadian rhythm. In contrast, continuous infusion of anti-L1 antibody temporarily disrupted the circadian rhythm during the infusion period. Furthermore, the infusion of the anti-L1 antibody but not that of control IgG caused a change in the SCN conformation, from which it appeared that SCN neurons displaced in dorsal direction, 4 days after the start of the infusion. These findings suggest that the cell adhesion molecule, L1, might be involved in the generation and/or transduction of the time signal of the circadian rhythm in the SCN.  相似文献   

17.
Transplantation of the fetal suprachiasmatic nucleus (SCN) in arrhythmic SCN-lesioned rats can reinstate circadian drinking rhythms in 40% to 50% of the cases. In the current article, it was investigated whether the failure in the other rats could be due to the absence of a circadian rhythm in the grafted SCN, using a circadian vasopressin (VP) rhythm in the cerebrospinal fluid (CSF) as the indicator for a rhythmic SCN. CSF was sampled in continuous darkness from-intact control rats and SCN-lesioned and -grafted rats. VP could be detected in all samples, with concentrations of 15 to 30 pg/ml in the control rats and 5 to 15 pg/ml in the grafted rats. A circadian VP rhythm with a two- to threefold difference between peak and nadir values was found in all 7 control rats but in only 4 of 13 experimental rats, despite the presence of a VP-positive SCN in all grafts. A circadian VP rhythm was present in 2 drinking rhythm-recovered rats (6 of 13) and in 2 nonrecovery rats. Apparently, in these latter rats, the failure of the grafted SCN to restore a circadian drinking rhythm cannot be attributed to a lack of rhythmicity in the SCN itself. Thus, the presence of a rhythmic grafted SCN, as is deduced from a circadian CSF VP rhythm, appears not to be sufficient for restoration of a circadian drinking rhythm in SCN-lesioned arrhythmic rats.  相似文献   

18.
Early lighting conditions have been described to produce long-term effects on circadian behavior, which may also influence the response to agents acting on the circadian system. It has been suggested that melatonin (MEL) may act on the circadian pacemaker and as a scavenger of reactive oxygen and nitrogen species. Here, we studied the oxidative and behavioral changes caused by prolonged exposure to constant light (LL) in groups of rats that differed in MEL administration and in lighting conditions during suckling. The rats were exposed to either a light–dark cycle (LD) or LL. At 40 days old, rats were treated for 2 weeks with a daily subcutaneous injection of MEL (10?mg/kg body weight) or a vehicle at activity onset. Blood samples were taken before and after treatment, to determine catalase (CAT) activity and nitrite level in plasma. As expected, LL-reared rats showed a more stable motor activity circadian rhythm than LD rats. MEL treatment produced more reactivity in LD- than in LL rats, and was also able to alter the phase of the rhythm in LD rats. There were no significant differences in nitrite levels or CAT activity between the groups, although both variables increased with time. Finally, we also tested depressive signs by means of sucrose consumption, and anhedonia was found in LD males treated with MEL. The results suggest that the lighting conditions in early infancy are important for the long-term functionality of the circadian system, including rhythm manifestation, responses to MEL and mood alterations.  相似文献   

19.
The nature of the circadian signal from the suprachiasmatic nucleus (SCN) required for prolactin (PRL) surges is unknown. Because the SCN neuronal circadian rhythm is determined by a feedback loop of Period (Per) 1, Per2, and circadian locomotor output cycles kaput (Clock) gene expressions, we investigated the effect of SCN rhythmicity on PRL surges by disrupting this loop. Because lesion of the locus coeruleus (LC) abolishes PRL surges and these neurons receive SCN projections, we investigated the role of SCN rhythmicity in the LC neuronal circadian rhythm as a possible component of the circadian mechanism regulating PRL surges. Cycling rats on proestrous day and estradiol-treated ovariectomized rats received injections of antisense or random-sequence deoxyoligonucleotide cocktails for clock genes (Per1, Per2, and Clock) in the SCN, and blood samples were taken for PRL measurements. The percentage of tyrosine hydroxylase-positive neurons immunoreactive to Fos-related antigen (FRA) was determined in ovariectomized rats submitted to the cocktail injections and in a 12:12-h light:dark (LD) or constant dark (DD) environment. The antisense cocktail abolished both the proestrous and the estradiol-induced PRL surges observed in the afternoon and the increase of FRA expression in the LC neurons at Zeitgeber time 14 in LD and at circadian time 14 in DD. Because SCN afferents and efferents were probably preserved, the SCN rhythmicity is essential for the magnitude of daily PRL surges in female rats as well as for LC neuronal circadian rhythm. SCN neurons therefore determine PRL secretory surges, possibly by modulating LC circadian neuronal activity.  相似文献   

20.
The risk for cardiovascular incidents is highest in the early morning, which seems partially due to endogenous factors. Endogenous circadian rhythms in mammalian physiology and behavior are regulated by the suprachiasmatic nucleus (SCN). Recently, anatomical evidence has been provided that SCN functioning is disturbed in patients with essential hypertension. Here we review neural and neuroendocrine mechanisms by which the SCN regulates the cardiovascular system. First, we discuss evidence for an endogenous circadian rhythm in cardiac activity, both in humans and rats, which is abolished after SCN lesioning in rats. The immediate impact of retinal light exposure at night on SCN-output to the cardiovascular system, which signals 'day' in both diurnal (human) and nocturnal (rat) mammals with opposite effects on physiology, is discussed. Furthermore, we discuss the impact of melatonin treatment on the SCN and its potential medical relevance in patients with essential hypertension. Finally, we argue that regional differentiation of the SCN and autonomous nervous system is required to explain the multitude of circadian rhythms. Insights into the mechanisms by which the SCN affects the cardiovascular system may provide new strategies for the treatment of disease conditions known to coincide with circadian rhythm disturbances, as is presented for essential hypertension.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号